Ultrasonic Excitation - Fiber Bragg Grating Sensing Technique for Damage Identification

Cai Li, Xiaoguang Yue
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引用次数: 9

Abstract

Nondestructive testing plays an important role in on-line equipment inspection. Traditional nondestructive testing methods have been widely utilized for this. Ultrasonic excitation-fiber Bragg grating sensing technique is based on well-developed optical fiber grating technology, which has a good prospect of damage detection for mechanical equipments. However the corresponding research is still at the starting stage and further research work is necessary. The main contribution pursued in this investigation is to establish a detection system based on fiber Bragg grating sensing under ultrasonic excitation and predict the damage position through time delay on the plate structure. Differencing from the conventional approaches, a new way of damage detection utilizes fiber Bragg grating sensors and a position algorithm by two-dimensional method is derived. Moreover, wavelet transform is adopted in the subsequent signal processing. Finally, a platform for experiment is built to verify the theoretical analysis of the sensing characterization of the fiber Bragg grating sensor in ultrasonic excitation. Experiment results show that the wavelet transform is effective for signal denoising and our localization algorithm is feasible.

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超声激励-光纤光栅损伤识别技术
无损检测在设备在线检测中占有重要地位。为此,传统的无损检测方法得到了广泛的应用。超声激励-光纤光栅传感技术是在发达的光纤光栅技术基础上发展起来的,在机械设备的损伤检测中具有良好的应用前景。然而,相关的研究还处于起步阶段,需要进一步的研究工作。本研究的主要贡献是建立了基于光纤光栅传感的超声激励下的检测系统,并通过延时预测板结构的损伤位置。与传统的损伤检测方法不同,本文提出了一种利用光纤光栅传感器进行损伤检测的新方法,并推导了一种二维定位算法。随后的信号处理采用小波变换。最后搭建了实验平台,验证了光纤光栅传感器在超声激励下传感特性的理论分析。实验结果表明,小波变换对信号去噪是有效的,所提出的定位算法是可行的。
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